US20200247384A1 - System and method for controlling hybrid electric vehicle using driving tendency of driver - Google Patents
System and method for controlling hybrid electric vehicle using driving tendency of driver Download PDFInfo
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- US20200247384A1 US20200247384A1 US16/854,198 US202016854198A US2020247384A1 US 20200247384 A1 US20200247384 A1 US 20200247384A1 US 202016854198 A US202016854198 A US 202016854198A US 2020247384 A1 US2020247384 A1 US 2020247384A1
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- electric vehicle
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Definitions
- the present invention relates to a system and method for controlling a hybrid electric vehicle. More particularly, the present invention relates to a system and method for controlling a hybrid electric vehicle using a driving tendency of a driver.
- a hybrid electric vehicle efficiently combines power of an internal combustion engine and power of a motor and uses the combined power to drive the vehicle.
- the hybrid electric vehicle generally includes an engine, a motor, an engine clutch configured to adjust power between the engine and the motor, a transmission, a differential gear device, a battery, an integrated starter and generator (ISG) configured to start the engine or generate electric power by an output of the engine, and wheels.
- ISG integrated starter and generator
- the integrated starter and generator may be called a hybrid starter and generator (HSG).
- the hybrid electric vehicle provides driving in an electric vehicle (EV) mode in which the power of the motor is used by coupling or decoupling the engine clutch depending on an acceleration or deceleration intention based on a manipulation of an accelerator pedal and a brake pedal by a driver, a vehicle speed, a state of charge (SOC) of the battery, and the like; a hybrid electric vehicle (HEV) mode in which a torque of the engine is used as main power and a torque of the motor is used as auxiliary power; a regenerative braking mode in which braking and inertial energy are recovered through electric power generation of the motor during braking the vehicle or during driving the vehicle by inertia to be charged in the battery.
- EV electric vehicle
- HEV hybrid electric vehicle
- the hybrid electric vehicle uses both of mechanical energy of the engine and electrical energy of the battery, uses optimal operation regions of the engine and the motor, and recovers the energy at the time of braking the vehicle, fuel efficiency may be improved, and the energy may be efficiently used. However, a deviation may be generated in fuel efficiency and the SOC of the battery of the hybrid electric vehicle based on a driving tendency of a driver.
- a satisfaction of the driver associated with driving performance of the hybrid electric vehicle depends on whether the hybrid electric vehicle is driven to be appropriate for the driving tendency of the driver.
- a performance characteristic of the hybrid electric vehicle is fixed to one performance characteristics with respect to the same vehicle type, a difference may be generated between the driving tendency of the driver and a reaction of the hybrid electric vehicle.
- the satisfaction of the driver associated with the driving performance may be maximized.
- the present invention provides a method for controlling a hybrid electric vehicle having advantages of optimizing a state of charge (SOC) of a battery and improving fuel efficiency using a driving tendency of a driver.
- SOC state of charge
- An exemplary embodiment of the present invention provides a method for controlling a hybrid electric vehicle using a driving tendency that may include: determining a driving tendency level based on data to determine a driving tendency of a driver; determining a target engine torque using an engine torque map based on a vehicle speed and a required torque; determining whether the driving tendency level corresponds to a predetermined level; determining whether the required torque is equal to or greater than a torque that corresponds to an optimal operating point of an engine when the driving tendency level corresponds to the predetermined level; and adjusting the target engine torque when the required torque is equal to or greater than the torque that corresponds to the optimal operating point of the engine.
- the target engine torque may be increased up to a part-load max torque of the engine to decrease a motor assist torque.
- the method for controlling a hybrid electric vehicle using a driving tendency may further include setting a final target engine torque to the torque that corresponds to the optimal operating point of the engine when the required torque is less than the torque that corresponds to the optimal operating point of the engine.
- Another exemplary embodiment of the present invention provides a method for controlling a hybrid electric vehicle using a driving tendency that may include: determining a driving tendency level based on data to determine a driving tendency of a driver; determining whether an idle lock-up charge entering condition is satisfied; and performing an idle lock-up charge control when the idle lock-up charge entering condition is satisfied, wherein the idle lock-up charge entering condition is satisfied when an engine is in a driven state, the hybrid electric vehicle is in a coasting state, and an SOC of a battery is less than or equal to an idle lock-up charge entering SOC, and the idle lock-up charge entering SOC is set based on the driving tendency level.
- an engine clutch may be maintained in an engaged state, and the battery may be charged through electric power generation of a motor and an integrated starter and generator.
- the method for controlling a hybrid electric vehicle using a driving tendency may further include: determining whether an idle lock-up charge release condition is satisfied; and releasing the idle lock-up charge control when the idle lock-up charge release condition is satisfied, wherein the idle lock-up charge release condition is satisfied when the coasting state is released or the SOC of the battery is equal to or greater than an idle lock-up charge release SOC, and the idle lock-up charge release SOC is set based on the driving tendency level.
- the driving tendency level may be any one of a mild level, a normal level, an aggressive level, and a racer level
- the shift pattern may be any one of a mild shift pattern that corresponds to the mild level, a normal shift pattern that corresponds to the normal level, an aggressive shift pattern that corresponds to the aggressive level, and a racer shift pattern that corresponds to the racer level.
- the method for controlling a hybrid electric vehicle using a driving tendency may further include: setting a creep torque map based on the driving tendency level; and performing a creep torque control using the creep torque map based on a vehicle speed and a shift stage, wherein the shift stage may be determined based on the shift pattern.
- Yet still another exemplary embodiment of the present invention provides a method for controlling a hybrid electric vehicle using a driving tendency that may include: determining a driving tendency level based on data to determine a driving tendency of a driver; determining whether an engine start condition is satisfied in a state in which an engine is stopped; and performing an engine start control when the engine start condition is satisfied, wherein the engine start condition may be satisfied when power required by the driver is equal to or greater than a first threshold value, and the first threshold value may be set based on the driving tendency level.
- the engine start condition may be satisfied when accumulated driving energy is equal to or greater than a second threshold value, the accumulated driving energy may be calculated based on required power during a predetermined time in a section in which a change rate of a position value of an accelerator pedal is a positive value, and the second threshold value may be set based on the driving tendency level.
- the method for controlling a hybrid electric vehicle using a driving tendency may further include: determining whether an engine stop condition is satisfied in a state in which the engine starts; and performing an engine stop control when the engine stop condition is satisfied, wherein the engine stop condition may be satisfied when power required by the driver is less than or equal to a third threshold value, and the third threshold value may be set based on the driving tendency level.
- the hybrid electric vehicle may be controlled using the driving tendency of the driver, thereby making it possible to optimize the SOC of the battery and improve the fuel efficiency.
- the intention of the driver may be more accurately reflected in the shift.
- FIG. 1 is an exemplary block diagram showing a system for controlling a hybrid electric vehicle according to an exemplary embodiment of the present invention
- FIG. 2 is an exemplary flow chart showing a method for controlling an engine torque using a driving tendency according to an exemplary embodiment of the present invention
- FIG. 3 is an exemplary diagram showing an engine torque map according to an exemplary embodiment of the present invention.
- FIG. 4 is an exemplary flow chart showing a method for charging a battery using a driving tendency according to an exemplary embodiment of the present invention
- FIG. 5 is an exemplary diagram for describing a method for charging a battery according to an exemplary embodiment of the present invention
- FIG. 6 is an exemplary flow chart showing a method for performing a shift control and a creep torque control using a driving tendency according to an exemplary embodiment of the present invention
- FIG. 7 is an exemplary diagram showing a shift pattern according to an exemplary embodiment of the present invention.
- FIG. 8 is an exemplary flow chart showing a method for performing an engine start control using a driving tendency according to an exemplary embodiment of the present invention.
- vehicle or “vehicular” or other similar term as used herein is inclusive of motor vehicles in general such as passenger automobiles including sports utility vehicles (SUV), buses, trucks, various commercial vehicles, watercraft including a variety of boats and ships, aircraft, and the like, and includes hybrid vehicles, electric vehicles, plug-in hybrid electric vehicles, hydrogen-powered vehicles and other alternative fuel vehicles (e.g. fuels derived from resources other than petroleum).
- a hybrid vehicle is a vehicle that has two or more sources of power, for example both gasoline-powered and electric-powered vehicles.
- controller/control unit refers to a hardware device that includes a memory and a processor.
- the memory is configured to store the modules and the processor is specifically configured to execute said modules to perform one or more processes which are described further below.
- control logic of the present invention may be embodied as non-transitory computer readable media on a computer readable medium containing executable program instructions executed by a processor, controller/control unit or the like.
- the computer readable mediums include, but are not limited to, ROM, RAM, compact disc (CD)-ROMs, magnetic tapes, floppy disks, flash drives, smart cards and optical data storage devices.
- the computer readable recording medium can also be distributed in network coupled computer systems so that the computer readable media is stored and executed in a distributed fashion, e.g., by a telematics server or a Controller Area Network (CAN).
- a telematics server or a Controller Area Network (CAN).
- CAN Controller Area Network
- FIG. 1 is an exemplary block diagram showing a system for controlling a hybrid electric vehicle according to an exemplary embodiment of the present invention.
- the system for controlling a hybrid electric vehicle according to an exemplary embodiment of the present invention may include an engine 10 , a motor 20 , an engine clutch 30 configured to adjust power between the engine 10 and the motor 20 , a transmission 40 , a battery 50 , an integrated starter and generator (ISG) 60 may be configured to state the engine 10 or generate electric power by an output of the engine 10 , a differential gear device 70 , wheels 80 , a data detector 90 , and a controller 100 .
- ISG integrated starter and generator
- the controller 100 may be configured to operate the engine 10 , the motor 20 , the engine clutch 30 , the transmission 40 , the battery 50 , the integrated starter and generator (ISG) 60 , the differential gear device 70 , the wheels 80 , and the data detector 90 .
- ISG integrated starter and generator
- power generated in the engine 10 or the motor 20 may be selectively transferred to an input shaft of the transmission 40 , and power output from an output terminal of the transmission 40 may be transferred to axles through the differential gear device 70 .
- the axles may be configured to rotate the wheels 80 , to drive the hybrid electric vehicle by the power generated in the engine 10 or the motor 20 .
- the battery 50 may be configured to store a high voltage therein, supply a driving voltage to the motor 20 in an electric vehicle (EV) mode and a hybrid electric vehicle (HEV) mode, and may be charged with electricity recovered by the motor in a regenerative braking mode.
- EV electric vehicle
- HEV hybrid electric vehicle
- the controller 100 may be configured to adjust output torques of the engine 10 and the motor 20 based on a state of the hybrid electric vehicle and operate the hybrid electric vehicle in the EV mode, the HEV mode, and the regenerative braking mode based on a driving condition and a state of charge (SOC) of the battery 50 .
- the data detector 90 may be configured to detect data to determine a driving tendency of a driver, and the data detected by the data detector 90 may be transferred to the controller 100 .
- the data detector 90 may include an accelerator pedal position sensor 91 , a brake pedal position sensor 92 , a vehicle speed sensor 93 , an SOC sensor 94 , an inter-vehicle distance sensor 95 , an engine revolution per minute (RPM) sensor 96 , and a shift stage sensor 97 .
- an accelerator pedal position sensor 91 a brake pedal position sensor 92 , a vehicle speed sensor 93 , an SOC sensor 94 , an inter-vehicle distance sensor 95 , an engine revolution per minute (RPM) sensor 96 , and a shift stage sensor 97 .
- RPM revolution per minute
- the accelerator pedal position sensor 91 may be configured to measure a position value of an accelerator pedal (e.g., an engagement degree of the accelerator pedal) and transfer a signal for the position value to the controller 100 .
- a position value of an accelerator pedal e.g., an engagement degree of the accelerator pedal
- the position value of the accelerator pedal may be 100%, and when the accelerator pedal is disengaged, the position value of the accelerator pedal may be 0%.
- a throttle valve opening degree sensor mounted in an intake passage may be used instead of the accelerator pedal position sensor 91 . Therefore, it is to be considered in the present specification and the claims that the accelerator pedal position sensor 91 may include the throttle valve opening degree detector and the position value of the accelerator pedal may include an opening degree of a throttle valve.
- the brake pedal position sensor 92 may be configured to measure a position value of a brake pedal (e.g., an engagement degree of the brake pedal) and transfer a signal for the position value to the controller 100 .
- a position value of a brake pedal e.g., an engagement degree of the brake pedal
- the vehicle speed sensor 93 may be configured to detect a vehicle speed and transfer a signal for the vehicle speed to the controller 100 .
- the vehicle speed sensor 93 may be mounted within the wheel of the vehicle.
- a target shift stage may be calculated using a shift pattern based on the signal of the accelerator pedal position sensor 91 and the signal of the vehicle speed sensor 93 , and a shift to the target shift stage may be executed.
- hydraulic pressure supplied to the plurality of friction elements or released from the plurality of friction elements may be adjusted.
- a current applied to a plurality of synchronizer mechanisms and an actuator may be adjusted.
- the SOC sensor 94 may be configured to detect the SOC of the battery 50 and transfer a signal for the SOC to the controller 100 . Instead of directly detecting the SOC of the battery 50 , a current and a voltage of the battery 50 may be measured, and the SOC of the battery 50 may be predicted from the measured current and voltage.
- the inter-vehicle distance sensor 95 may be configured to detect a distance between the hybrid electric vehicle and a preceding vehicle. As the inter-vehicle distance sensor 95 , various sensors such as an ultrasonic wave sensor, an infrared sensor, and the like, may be used.
- the engine RPM sensor 96 may be configured to detect a revolutions per minute (RPM) of the engine from a phase change of a crank shaft and transfer a signal for the RPM of the engine to the controller 100 .
- the shift stage sensor 97 may be configured to detect a shift stage currently engaged.
- the controller 100 may be implemented by at least one microprocessor operated by a predetermined program that may include a series of commands for executing each step included in a method for controlling a hybrid electric vehicle according to an exemplary embodiment of the present invention to be described below.
- the controller 100 may be configured to determine a driving tendency level of the driver based on the data detected by the data sensor 90 .
- the driving tendency level may be determined based on a driving tendency index calculated based on the data.
- the driving tendency index may be calculated based on how well the plurality of rules associated with the driving tendency of the driver are satisfied.
- the plurality of rules may be predetermined on the assumption that they are considered to be appropriate for those skilled in the art to determine the driving tendency of the driver.
- the driving tendency index may be calculated based on the position value of the accelerator pedal, a change rate of the position value of the accelerator pedal, the position value of the brake pedal, a change rate of the position value of the brake pedal, the vehicle speed, an acceleration, an inter-vehicle distance, a change rate of the inter-vehicle distance, and the like.
- the driving tendency level may be any one of a mild level, a normal level, an aggressive level, and a racer level. Such levels may be predetermined based on the above driving tendency index factors. Furthermore, fuel efficiency and the SOC of the battery 50 may deteriorate in a sequence of the mild level, the normal level, the aggressive level, and the racer level.
- a method of calculating the driving tendency index and a method of determining the number of driving tendency levels and the driving tendency level are not limited thereto, by may be variously implemented by those skilled in the art.
- the controller 100 may be configured to operate the hybrid electric vehicle based on the determined driving tendency level.
- the controller 100 may be configured to adjust the engine torque, adjust the SOC of the battery, perform a shift control, perform a creep torque control, and perform an engine start control, based on the driving tendency level.
- the hybrid electric vehicle may be appropriately controlled using the driving tendency, thereby making it possible to improve the fuel efficiency and the SOC of the battery and perform a shift to be appropriate for the driving tendency.
- FIG. 2 is an exemplary flow chart showing a method for controlling an engine torque using a driving tendency according to an exemplary embodiment of the present invention.
- FIG. 3 is an exemplary diagram showing an engine torque map according to an exemplary embodiment of the present invention.
- the method for controlling an engine torque starts with determining the driving tendency level based on the data to determine the driving tendency of the driver (S 110 ).
- the controller 100 may be configured to calculate the driving tendency index based on the data detected by the data detector 90 and determine the driving tendency level of the driver based on the driving tendency index.
- the driving tendency level may be any one of the mild level, the normal level, the aggressive level, and the racer level.
- the controller 100 may be configured to set a target engine torque using an engine torque map based on the vehicle speed and a required torque (S 120 ).
- the required torque of the driver may be calculated based on the position value of the accelerator pedal and the vehicle speed, and a target engine torque that corresponds to a given condition may be stored in the engine torque map.
- a torque that corresponds to an optimal operating point of the engine may be set to the target engine torque.
- the controller 100 may be configured to determine whether the driving tendency level corresponds to a predetermined level (S 130 ).
- the predetermined level may be the aggressive level or the racer level, but is not limited thereto.
- the controller 100 may be configured to set the torque that corresponds to the optimal operating point of the engine to a final target engine torque (S 160 ).
- the controller 100 may be configured to determine whether the required torque is equal to or greater than a torque that corresponds to the optimal operating point of the engine (S 140 ).
- the controller 100 may be configured to set the torque that corresponds to the optimal operating point of the engine to the final target engine torque (S 160 ).
- the controller 100 may be configured to adjust the target engine torque (S 150 ).
- the controller 100 may be configured to increase the target engine torque up to a part-load max torque of the engine.
- the controller 100 may also be configured to set the adjusted target engine torque to the final target engine torque (S 160 ).
- the required torque may be implemented by the sum of the target engine torque and a motor assist torque. Therefore, when the torque that corresponds to the optimal operating point of the engine is set to the target engine torque, when the required torque is excessively increased, the motor assist torque may be excessively increased, such that the SOC of the battery 50 may be excessively decreased. When the target engine torque is output up to the part-load max torque, the motor assist torque may be decreased. Therefore, an excessive decrease of the SOC of the battery 50 may be prevented.
- FIG. 4 is an exemplary flow chart showing a method for charging a battery using a driving tendency according to an exemplary embodiment of the present invention.
- FIG. 5 is an exemplary diagram describing a method for charging a battery according to an exemplary embodiment of the present invention.
- the method for charging a battery 50 according to an exemplary embodiment of the present invention starts with determining the driving tendency level based on the data to determine the driving tendency of the driver (S 210 ).
- the controller 100 may be configured to calculate the driving tendency index based on the data detected by the data detector 90 and determine the driving tendency level of the driver based on the driving tendency index.
- the driving tendency level may be any one of the mild level, the normal level, the aggressive level, and the racer level.
- the controller 100 may be configured to determine whether an idle lock-up charge entering condition is satisfied (S 220 ).
- the idle lock-up charge entering condition may be considered to be satisfied when the engine 10 is in a driven state, the hybrid electric vehicle is in a coasting state, and the SOC of the battery 50 is less than or equal to an idle lock-up charge entering SOC.
- the coasting state may be determined based on the position value of the accelerator pedal and the position value of the brake pedal (e.g., degree of engagement or disengagement).
- the idle lock-up charge entering SOC may be set based on the driving tendency level. In other words, an idle lock-up charge entering SOC based on the aggressive level may be set to be greater than an idle lock-up charge entering SOC based on the normal level.
- the method for charging a battery using a driving tendency may terminate.
- the controller 100 may be configured to perform an idle lock-up charge control (S 230 ).
- the part-load charge control is a control used to charge the battery 50 by rotating the motor 20 by the power of the engine 10 when the accelerator pedal is engaged.
- the part-load charge control is used to maintain the SOC using residual power of the engine 10 when the vehicle speed is present in an entire SOC region.
- the idle charge control is used to charge the battery 50 by rotating the integrated starter and generator 60 by the power of the engine 10 regardless of the position value of the accelerator pedal, the position value of the brake pedal, and the vehicle speed to escape from a lowered SOC state.
- the power limit control is used to limit power used in an electronic component to escape from an excessively lowered SOC state.
- the idle lock-up charge control is used to charge the battery 50 using both of the motor 20 and the integrated starter and generator 60 .
- the controller 100 may be configured to maintain the engine clutch 30 in an engaged state and charge the battery 50 through electric power generation of the motor 20 and the integrated starter and generator 60 .
- charge efficiency may be more improved than the idle charge control in which only the integrated starter and generator 60 is used. Therefore, even when the vehicle is driven under a severe condition in which acceleration or deceleration is frequently generated, the SOC of the battery 50 may be maintained in a normal range.
- the controller 100 may be configured to determine whether an idle lock-up charge release condition is satisfied (S 240 ).
- the idle lock-up charge release condition may be considered to be satisfied when the coasting state is released or the SOC of the battery is equal to or greater than an idle lock-up charge release SOC.
- the idle lock-up release SOC may be set based on the driving tendency level. In other words, an idle lock-up release SOC based on the aggressive level may be set to be greater than an idle lock-up release SOC based on the normal level.
- the controller 100 may proceed to S 230 .
- the controller 100 may be configured to release the idle lock-up charge control (S 250 ), and terminate the method for charging a battery using a driving tendency according to an exemplary embodiment of the present invention.
- FIG. 6 is an exemplary flow chart showing a method for performing a shift control and a creep torque control using a driving tendency according to an exemplary embodiment of the present invention.
- FIG. 7 is an exemplary diagram showing a shift pattern according to an exemplary embodiment of the present invention.
- the method for performing a shift control and a creep torque control according to an exemplary embodiment of the present invention starts with determining the driving tendency level based on the data to determine the driving tendency of the driver (S 310 ).
- the controller 100 may be configured to calculate the driving tendency index based on the data detected by the data detector 90 and determine the driving tendency level of the driver based on the driving tendency index.
- the driving tendency level may be any one of the mild level, the normal level, the aggressive level, and the racer level.
- the controller 100 may be configured to set a shift pattern and a creep torque map based on the driving tendency level (S 320 ). As shown in FIG. 7 , the shift pattern may be set differently based on the driving tendency level.
- the shift pattern may be any one of a mild shift pattern that corresponds to the mild level, a normal shift pattern that corresponds to the normal level, an aggressive shift pattern that corresponds to the aggressive level, and a racer shift pattern that corresponds to the racer level.
- a target creep torque that corresponds to a given condition may be stored in the creep torque map. Creep driving may refer to that the hybrid electric vehicle is driven by only the torque of the motor 20 when the accelerator pedal is disengaged.
- the target creep torque may be a torque required during the creep driving.
- the controller 100 may be configured to perform the shift control based on the shift pattern (S 330 ). As shown in FIG. 7 , a shift may be performed at a relative lower vehicle speed when the driving tendency level is the normal level than when the driving tendency level is the aggressive level. Therefore, a shift feel appropriate for the driving tendency of the driver may be provided, and when the driving tendency level is the aggressive level or the racer level, an average RPM of the engine 10 may increase, thereby making it possible to maintain the SOC of the battery 50 in a normal range.
- the controller 100 may be configured to perform the creep torque control using the creep torque map based on the vehicle speed and the shift stage. The shift stage may be determined based on the shift pattern set based on the driving tendency level. Therefore, the creep torque appropriate for the driving tendency of the driver may be generated.
- FIG. 8 is an exemplary flow chart showing a method for performing an engine start control using a driving tendency according to an exemplary embodiment of the present invention.
- the method for performing an engine start control according to an exemplary embodiment of the present invention starts with determining the driving tendency level based on the data to determine the driving tendency of the driver (S 410 ).
- the controller 100 may be configured to calculate the driving tendency index based on the data detected by the data detector 90 and determine the driving tendency level based on the driving tendency index.
- the driving tendency level may be any one of the mild level, the normal level, the aggressive level, and the racer level.
- the controller 100 may be configured to determine whether an engine start condition is satisfied when the engine is stopped (S 420 ).
- the engine start condition may be considered to be satisfied when power required by the driver is equal to or greater than a first threshold value.
- the power required by the driver may be calculated based on the required torque and the vehicle speed, and the first threshold value may be set based on the driving tendency level. In other words, a first threshold value based on the aggressive level may be set to be less than a first threshold value based on the normal level.
- the engine start condition may be considered to be satisfied when accumulated driving energy is equal to or greater than a second threshold value.
- the accumulated driving energy may be calculated based on the required power during a predetermined time in a section in which a change rate of the position value of the accelerator pedal is a positive value.
- the second threshold value may be set based on the driving tendency level. In other words, a second threshold value based on the aggressive level may be set to be less than a second threshold value based on the normal level.
- the method for performing an engine start control using a driving tendency may terminate.
- the controller 100 may be configured to perform the engine start control (S 430 ).
- a mode of the hybrid electric vehicle may be converted from the EV mode into the HEV mode based on the engine start control.
- the controller 100 may be configured to determine whether an engine stop condition is satisfied (S 440 ).
- the engine stop condition may be considered to be satisfied when power required by the driver is less than or equal to a third threshold value.
- the third threshold value may be set based on the driving tendency level. In other words, a third threshold value based on the aggressive level may be set to be greater than a third threshold value based on the normal level.
- the controller 100 may be configured to perform an engine stop control (S 450 ) and terminate the method for performing an engine start control using a driving tendency according to an exemplary embodiment of the present invention.
- the hybrid electric vehicle may be controlled using the driving tendency of the driver, thereby making it possible to optimize the SOC of the battery 50 and improve the fuel efficiency.
- the intention of the driver may be more accurately reflected in the shift.
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Abstract
A system and method for controlling a hybrid electric vehicle using a driving tendency are provided. The method includes determining a driving tendency level based on data to determine a driving tendency of a driver and determining a target engine torque using an engine torque map based on a vehicle speed and a required torque. Whether the driving tendency level corresponds to a predetermined level is determined as well as whether the required torque is equal to or greater than a torque that corresponds to an optimal operating point of an engine when the driving tendency level corresponds to the predetermined level. The target engine torque is then adjusted when the required torque is equal to or greater than the torque that corresponds to the optimal operating point of the engine.
Description
- This application claims priority to and the benefit of Korean Patent Application No. 10-2014-0085346 filed in the Korean Intellectual Property Office on Jul. 8, 2014, the entire contents of which are incorporated herein by reference.
- The present invention relates to a system and method for controlling a hybrid electric vehicle. More particularly, the present invention relates to a system and method for controlling a hybrid electric vehicle using a driving tendency of a driver.
- As well-known, a hybrid electric vehicle efficiently combines power of an internal combustion engine and power of a motor and uses the combined power to drive the vehicle. The hybrid electric vehicle generally includes an engine, a motor, an engine clutch configured to adjust power between the engine and the motor, a transmission, a differential gear device, a battery, an integrated starter and generator (ISG) configured to start the engine or generate electric power by an output of the engine, and wheels. The integrated starter and generator may be called a hybrid starter and generator (HSG).
- The hybrid electric vehicle provides driving in an electric vehicle (EV) mode in which the power of the motor is used by coupling or decoupling the engine clutch depending on an acceleration or deceleration intention based on a manipulation of an accelerator pedal and a brake pedal by a driver, a vehicle speed, a state of charge (SOC) of the battery, and the like; a hybrid electric vehicle (HEV) mode in which a torque of the engine is used as main power and a torque of the motor is used as auxiliary power; a regenerative braking mode in which braking and inertial energy are recovered through electric power generation of the motor during braking the vehicle or during driving the vehicle by inertia to be charged in the battery.
- Since the hybrid electric vehicle uses both of mechanical energy of the engine and electrical energy of the battery, uses optimal operation regions of the engine and the motor, and recovers the energy at the time of braking the vehicle, fuel efficiency may be improved, and the energy may be efficiently used. However, a deviation may be generated in fuel efficiency and the SOC of the battery of the hybrid electric vehicle based on a driving tendency of a driver.
- In addition, a satisfaction of the driver associated with driving performance of the hybrid electric vehicle depends on whether the hybrid electric vehicle is driven to be appropriate for the driving tendency of the driver. However, since the driving tendency of the driver varies, but a performance characteristic of the hybrid electric vehicle is fixed to one performance characteristics with respect to the same vehicle type, a difference may be generated between the driving tendency of the driver and a reaction of the hybrid electric vehicle. In other words, when the driving tendency of the driver is understood and the hybrid vehicle is operated to be appropriate for the driving tendency of the driver, the satisfaction of the driver associated with the driving performance may be maximized.
- The above information disclosed in this section is merely for enhancement of understanding of the background of the invention and therefore it may contain information that does not form the prior art that is already known in this country to a person of ordinary skill in the art.
- The present invention provides a method for controlling a hybrid electric vehicle having advantages of optimizing a state of charge (SOC) of a battery and improving fuel efficiency using a driving tendency of a driver.
- An exemplary embodiment of the present invention provides a method for controlling a hybrid electric vehicle using a driving tendency that may include: determining a driving tendency level based on data to determine a driving tendency of a driver; determining a target engine torque using an engine torque map based on a vehicle speed and a required torque; determining whether the driving tendency level corresponds to a predetermined level; determining whether the required torque is equal to or greater than a torque that corresponds to an optimal operating point of an engine when the driving tendency level corresponds to the predetermined level; and adjusting the target engine torque when the required torque is equal to or greater than the torque that corresponds to the optimal operating point of the engine.
- In the adjustment of the target engine torque, the target engine torque may be increased up to a part-load max torque of the engine to decrease a motor assist torque. The method for controlling a hybrid electric vehicle using a driving tendency may further include setting a final target engine torque to the torque that corresponds to the optimal operating point of the engine when the required torque is less than the torque that corresponds to the optimal operating point of the engine.
- Another exemplary embodiment of the present invention provides a method for controlling a hybrid electric vehicle using a driving tendency that may include: determining a driving tendency level based on data to determine a driving tendency of a driver; determining whether an idle lock-up charge entering condition is satisfied; and performing an idle lock-up charge control when the idle lock-up charge entering condition is satisfied, wherein the idle lock-up charge entering condition is satisfied when an engine is in a driven state, the hybrid electric vehicle is in a coasting state, and an SOC of a battery is less than or equal to an idle lock-up charge entering SOC, and the idle lock-up charge entering SOC is set based on the driving tendency level. In the idle lock-up charge control, an engine clutch may be maintained in an engaged state, and the battery may be charged through electric power generation of a motor and an integrated starter and generator.
- The method for controlling a hybrid electric vehicle using a driving tendency may further include: determining whether an idle lock-up charge release condition is satisfied; and releasing the idle lock-up charge control when the idle lock-up charge release condition is satisfied, wherein the idle lock-up charge release condition is satisfied when the coasting state is released or the SOC of the battery is equal to or greater than an idle lock-up charge release SOC, and the idle lock-up charge release SOC is set based on the driving tendency level.
- Yet another exemplary embodiment of the present invention provides a method for controlling a hybrid electric vehicle using a driving tendency may include: determining a driving tendency level based on data to determine a driving tendency of a driver; setting a shift pattern based on the driving tendency level; and performing a shift control based on the shift pattern. The driving tendency level may be any one of a mild level, a normal level, an aggressive level, and a racer level, and the shift pattern may be any one of a mild shift pattern that corresponds to the mild level, a normal shift pattern that corresponds to the normal level, an aggressive shift pattern that corresponds to the aggressive level, and a racer shift pattern that corresponds to the racer level. The method for controlling a hybrid electric vehicle using a driving tendency may further include: setting a creep torque map based on the driving tendency level; and performing a creep torque control using the creep torque map based on a vehicle speed and a shift stage, wherein the shift stage may be determined based on the shift pattern.
- Yet still another exemplary embodiment of the present invention provides a method for controlling a hybrid electric vehicle using a driving tendency that may include: determining a driving tendency level based on data to determine a driving tendency of a driver; determining whether an engine start condition is satisfied in a state in which an engine is stopped; and performing an engine start control when the engine start condition is satisfied, wherein the engine start condition may be satisfied when power required by the driver is equal to or greater than a first threshold value, and the first threshold value may be set based on the driving tendency level.
- The engine start condition may be satisfied when accumulated driving energy is equal to or greater than a second threshold value, the accumulated driving energy may be calculated based on required power during a predetermined time in a section in which a change rate of a position value of an accelerator pedal is a positive value, and the second threshold value may be set based on the driving tendency level. The method for controlling a hybrid electric vehicle using a driving tendency may further include: determining whether an engine stop condition is satisfied in a state in which the engine starts; and performing an engine stop control when the engine stop condition is satisfied, wherein the engine stop condition may be satisfied when power required by the driver is less than or equal to a third threshold value, and the third threshold value may be set based on the driving tendency level.
- As described above, according to an exemplary embodiment of the present invention, the hybrid electric vehicle may be controlled using the driving tendency of the driver, thereby making it possible to optimize the SOC of the battery and improve the fuel efficiency. In addition, the intention of the driver may be more accurately reflected in the shift.
- The above and other features of the present disclosure will now be described in detail with reference to certain exemplary embodiments thereof illustrated the accompanying drawings which are given hereinbelow by way of illustration only, and thus are not limitative of the present disclosure, and wherein:
-
FIG. 1 is an exemplary block diagram showing a system for controlling a hybrid electric vehicle according to an exemplary embodiment of the present invention; -
FIG. 2 is an exemplary flow chart showing a method for controlling an engine torque using a driving tendency according to an exemplary embodiment of the present invention; -
FIG. 3 is an exemplary diagram showing an engine torque map according to an exemplary embodiment of the present invention; -
FIG. 4 is an exemplary flow chart showing a method for charging a battery using a driving tendency according to an exemplary embodiment of the present invention; -
FIG. 5 is an exemplary diagram for describing a method for charging a battery according to an exemplary embodiment of the present invention; -
FIG. 6 is an exemplary flow chart showing a method for performing a shift control and a creep torque control using a driving tendency according to an exemplary embodiment of the present invention; -
FIG. 7 is an exemplary diagram showing a shift pattern according to an exemplary embodiment of the present invention; and -
FIG. 8 is an exemplary flow chart showing a method for performing an engine start control using a driving tendency according to an exemplary embodiment of the present invention. -
-
- 10: engine
- 20: motor
- 30: engine clutch
- 40: transmission
- 50: battery
- 60: integrated starter and generator
- 70: differential gear device
- 80: wheel
- 90: data detector
- 100: controller
- It is understood that the term “vehicle” or “vehicular” or other similar term as used herein is inclusive of motor vehicles in general such as passenger automobiles including sports utility vehicles (SUV), buses, trucks, various commercial vehicles, watercraft including a variety of boats and ships, aircraft, and the like, and includes hybrid vehicles, electric vehicles, plug-in hybrid electric vehicles, hydrogen-powered vehicles and other alternative fuel vehicles (e.g. fuels derived from resources other than petroleum). As referred to herein, a hybrid vehicle is a vehicle that has two or more sources of power, for example both gasoline-powered and electric-powered vehicles.
- Although exemplary embodiment is described as using a plurality of units to perform the exemplary process, it is understood that the exemplary processes may also be performed by one or plurality of modules. Additionally, it is understood that the term controller/control unit refers to a hardware device that includes a memory and a processor. The memory is configured to store the modules and the processor is specifically configured to execute said modules to perform one or more processes which are described further below.
- Furthermore, control logic of the present invention may be embodied as non-transitory computer readable media on a computer readable medium containing executable program instructions executed by a processor, controller/control unit or the like. Examples of the computer readable mediums include, but are not limited to, ROM, RAM, compact disc (CD)-ROMs, magnetic tapes, floppy disks, flash drives, smart cards and optical data storage devices. The computer readable recording medium can also be distributed in network coupled computer systems so that the computer readable media is stored and executed in a distributed fashion, e.g., by a telematics server or a Controller Area Network (CAN).
- The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention. As used herein, the singular forms “a”, “an” and “the” are intended to include the plural forms as well, unless the context clearly indicates otherwise. It will be further understood that the terms “comprises” and/or “comprising,” when used in this specification, specify the presence of stated features, integers, steps, operations, elements, and/or components, but do not preclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and/or groups thereof. As used herein, the term “and/or” includes any and all combinations of one or more of the associated listed items.
- Hereinafter, exemplary embodiments of the present invention will be described more fully with reference to the accompanying drawings so as to be easily practiced by those skilled in the art to which the present invention pertains. In addition, since the respective components shown in the accompanying drawings are arbitrarily shown for convenience of explanation, the present invention is not necessarily limited to contents shown in the accompanying drawings.
-
FIG. 1 is an exemplary block diagram showing a system for controlling a hybrid electric vehicle according to an exemplary embodiment of the present invention. As shown inFIG. 1 , the system for controlling a hybrid electric vehicle according to an exemplary embodiment of the present invention may include anengine 10, amotor 20, anengine clutch 30 configured to adjust power between theengine 10 and themotor 20, atransmission 40, abattery 50, an integrated starter and generator (ISG) 60 may be configured to state theengine 10 or generate electric power by an output of theengine 10, adifferential gear device 70,wheels 80, adata detector 90, and acontroller 100. Thecontroller 100 may be configured to operate theengine 10, themotor 20, theengine clutch 30, thetransmission 40, thebattery 50, the integrated starter and generator (ISG) 60, thedifferential gear device 70, thewheels 80, and thedata detector 90. - In particular, power generated in the
engine 10 or themotor 20 may be selectively transferred to an input shaft of thetransmission 40, and power output from an output terminal of thetransmission 40 may be transferred to axles through thedifferential gear device 70. The axles may be configured to rotate thewheels 80, to drive the hybrid electric vehicle by the power generated in theengine 10 or themotor 20. Thebattery 50 may be configured to store a high voltage therein, supply a driving voltage to themotor 20 in an electric vehicle (EV) mode and a hybrid electric vehicle (HEV) mode, and may be charged with electricity recovered by the motor in a regenerative braking mode. - The
controller 100 may be configured to adjust output torques of theengine 10 and themotor 20 based on a state of the hybrid electric vehicle and operate the hybrid electric vehicle in the EV mode, the HEV mode, and the regenerative braking mode based on a driving condition and a state of charge (SOC) of thebattery 50. Thedata detector 90 may be configured to detect data to determine a driving tendency of a driver, and the data detected by thedata detector 90 may be transferred to thecontroller 100. Thedata detector 90 may include an acceleratorpedal position sensor 91, a brakepedal position sensor 92, avehicle speed sensor 93, anSOC sensor 94, aninter-vehicle distance sensor 95, an engine revolution per minute (RPM)sensor 96, and ashift stage sensor 97. - The accelerator
pedal position sensor 91 may be configured to measure a position value of an accelerator pedal (e.g., an engagement degree of the accelerator pedal) and transfer a signal for the position value to thecontroller 100. When the accelerator pedal is completely engaged, the position value of the accelerator pedal may be 100%, and when the accelerator pedal is disengaged, the position value of the accelerator pedal may be 0%. A throttle valve opening degree sensor mounted in an intake passage may be used instead of the acceleratorpedal position sensor 91. Therefore, it is to be considered in the present specification and the claims that the acceleratorpedal position sensor 91 may include the throttle valve opening degree detector and the position value of the accelerator pedal may include an opening degree of a throttle valve. - The brake
pedal position sensor 92 may be configured to measure a position value of a brake pedal (e.g., an engagement degree of the brake pedal) and transfer a signal for the position value to thecontroller 100. When the brake pedal is completely engaged, the position value of the brake pedal may be 100%, and when the brake pedal is disengaged, the position value of the brake pedal may be 0%. Thevehicle speed sensor 93 may be configured to detect a vehicle speed and transfer a signal for the vehicle speed to thecontroller 100. Thevehicle speed sensor 93 may be mounted within the wheel of the vehicle. - Meanwhile, a target shift stage may be calculated using a shift pattern based on the signal of the accelerator
pedal position sensor 91 and the signal of thevehicle speed sensor 93, and a shift to the target shift stage may be executed. In other words, for an automatic transmission that includes a plurality of planetary gear sets and a plurality of friction elements, hydraulic pressure supplied to the plurality of friction elements or released from the plurality of friction elements may be adjusted. In addition, for a double clutch transmission, a current applied to a plurality of synchronizer mechanisms and an actuator may be adjusted. - The
SOC sensor 94 may be configured to detect the SOC of thebattery 50 and transfer a signal for the SOC to thecontroller 100. Instead of directly detecting the SOC of thebattery 50, a current and a voltage of thebattery 50 may be measured, and the SOC of thebattery 50 may be predicted from the measured current and voltage. Theinter-vehicle distance sensor 95 may be configured to detect a distance between the hybrid electric vehicle and a preceding vehicle. As theinter-vehicle distance sensor 95, various sensors such as an ultrasonic wave sensor, an infrared sensor, and the like, may be used. - The
engine RPM sensor 96 may be configured to detect a revolutions per minute (RPM) of the engine from a phase change of a crank shaft and transfer a signal for the RPM of the engine to thecontroller 100. Theshift stage sensor 97 may be configured to detect a shift stage currently engaged. Thecontroller 100 may be implemented by at least one microprocessor operated by a predetermined program that may include a series of commands for executing each step included in a method for controlling a hybrid electric vehicle according to an exemplary embodiment of the present invention to be described below. - The
controller 100 may be configured to determine a driving tendency level of the driver based on the data detected by thedata sensor 90. The driving tendency level may be determined based on a driving tendency index calculated based on the data. The driving tendency index may be calculated based on how well the plurality of rules associated with the driving tendency of the driver are satisfied. The plurality of rules may be predetermined on the assumption that they are considered to be appropriate for those skilled in the art to determine the driving tendency of the driver. For example, the driving tendency index may be calculated based on the position value of the accelerator pedal, a change rate of the position value of the accelerator pedal, the position value of the brake pedal, a change rate of the position value of the brake pedal, the vehicle speed, an acceleration, an inter-vehicle distance, a change rate of the inter-vehicle distance, and the like. The driving tendency level may be any one of a mild level, a normal level, an aggressive level, and a racer level. Such levels may be predetermined based on the above driving tendency index factors. Furthermore, fuel efficiency and the SOC of thebattery 50 may deteriorate in a sequence of the mild level, the normal level, the aggressive level, and the racer level. A method of calculating the driving tendency index and a method of determining the number of driving tendency levels and the driving tendency level are not limited thereto, by may be variously implemented by those skilled in the art. - The
controller 100 may be configured to operate the hybrid electric vehicle based on the determined driving tendency level. In other words, thecontroller 100 may be configured to adjust the engine torque, adjust the SOC of the battery, perform a shift control, perform a creep torque control, and perform an engine start control, based on the driving tendency level. As described above, the hybrid electric vehicle may be appropriately controlled using the driving tendency, thereby making it possible to improve the fuel efficiency and the SOC of the battery and perform a shift to be appropriate for the driving tendency. - Hereinafter, a method for controlling a hybrid electric vehicle will be described in detail with reference to
FIGS. 2 to 8 .FIG. 2 is an exemplary flow chart showing a method for controlling an engine torque using a driving tendency according to an exemplary embodiment of the present invention.FIG. 3 is an exemplary diagram showing an engine torque map according to an exemplary embodiment of the present invention. - As shown in
FIGS. 2 and 3 , the method for controlling an engine torque according to an exemplary embodiment of the present invention starts with determining the driving tendency level based on the data to determine the driving tendency of the driver (S110). In other words, thecontroller 100 may be configured to calculate the driving tendency index based on the data detected by thedata detector 90 and determine the driving tendency level of the driver based on the driving tendency index. The driving tendency level may be any one of the mild level, the normal level, the aggressive level, and the racer level. - The
controller 100 may be configured to set a target engine torque using an engine torque map based on the vehicle speed and a required torque (S120). The required torque of the driver may be calculated based on the position value of the accelerator pedal and the vehicle speed, and a target engine torque that corresponds to a given condition may be stored in the engine torque map. Usually, a torque that corresponds to an optimal operating point of the engine may be set to the target engine torque. When the driving tendency level is determined, thecontroller 100 may be configured to determine whether the driving tendency level corresponds to a predetermined level (S130). The predetermined level may be the aggressive level or the racer level, but is not limited thereto. - In response to determining in S130 that the driving tendency level does not correspond to the predetermined level, the
controller 100 may be configured to set the torque that corresponds to the optimal operating point of the engine to a final target engine torque (S160). In response to determining in S130 that the driving tendency level corresponds to the predetermined level, thecontroller 100 may be configured to determine whether the required torque is equal to or greater than a torque that corresponds to the optimal operating point of the engine (S140). In response to determining in S140 that the required torque is less than the torque that corresponds to the optimal operating point of the engine, thecontroller 100 may be configured to set the torque that corresponds to the optimal operating point of the engine to the final target engine torque (S160). In response to determining in S140 that the required torque is equal to or greater than the torque that corresponds to the optimal operating point of the engine, thecontroller 100 may be configured to adjust the target engine torque (S150). In particular, thecontroller 100 may be configured to increase the target engine torque up to a part-load max torque of the engine. Thecontroller 100 may also be configured to set the adjusted target engine torque to the final target engine torque (S160). - The required torque may be implemented by the sum of the target engine torque and a motor assist torque. Therefore, when the torque that corresponds to the optimal operating point of the engine is set to the target engine torque, when the required torque is excessively increased, the motor assist torque may be excessively increased, such that the SOC of the
battery 50 may be excessively decreased. When the target engine torque is output up to the part-load max torque, the motor assist torque may be decreased. Therefore, an excessive decrease of the SOC of thebattery 50 may be prevented. -
FIG. 4 is an exemplary flow chart showing a method for charging a battery using a driving tendency according to an exemplary embodiment of the present invention.FIG. 5 is an exemplary diagram describing a method for charging a battery according to an exemplary embodiment of the present invention. As shown inFIG. 4 , the method for charging abattery 50 according to an exemplary embodiment of the present invention starts with determining the driving tendency level based on the data to determine the driving tendency of the driver (S210). In other words, thecontroller 100 may be configured to calculate the driving tendency index based on the data detected by thedata detector 90 and determine the driving tendency level of the driver based on the driving tendency index. The driving tendency level may be any one of the mild level, the normal level, the aggressive level, and the racer level. - The
controller 100 may be configured to determine whether an idle lock-up charge entering condition is satisfied (S220). The idle lock-up charge entering condition may be considered to be satisfied when theengine 10 is in a driven state, the hybrid electric vehicle is in a coasting state, and the SOC of thebattery 50 is less than or equal to an idle lock-up charge entering SOC. The coasting state may be determined based on the position value of the accelerator pedal and the position value of the brake pedal (e.g., degree of engagement or disengagement). The idle lock-up charge entering SOC may be set based on the driving tendency level. In other words, an idle lock-up charge entering SOC based on the aggressive level may be set to be greater than an idle lock-up charge entering SOC based on the normal level. In response to determining in S220 that the idle lock-up charge entering condition is not satisfied, the method for charging a battery using a driving tendency according to an exemplary embodiment of the present invention may terminate. In response to determining in S220 that the idle lock-up charge entering condition is satisfied, thecontroller 100 may be configured to perform an idle lock-up charge control (S230). - In the related art, a part-load charge control, an idle charge control, and a power limit control have been performed to charge the
battery 50. The part-load charge control is a control used to charge thebattery 50 by rotating themotor 20 by the power of theengine 10 when the accelerator pedal is engaged. The part-load charge control is used to maintain the SOC using residual power of theengine 10 when the vehicle speed is present in an entire SOC region. The idle charge control is used to charge thebattery 50 by rotating the integrated starter andgenerator 60 by the power of theengine 10 regardless of the position value of the accelerator pedal, the position value of the brake pedal, and the vehicle speed to escape from a lowered SOC state. The power limit control is used to limit power used in an electronic component to escape from an excessively lowered SOC state. - The idle lock-up charge control is used to charge the
battery 50 using both of themotor 20 and the integrated starter andgenerator 60. When the idle lock-up charge entering condition is satisfied, thecontroller 100 may be configured to maintain theengine clutch 30 in an engaged state and charge thebattery 50 through electric power generation of themotor 20 and the integrated starter andgenerator 60. As shown inFIG. 5 , since themotor 20 and the integrated starter andgenerator 60 generate the electric power using both of the power of theengine 10 and the torque of thewheel 80, charge efficiency may be more improved than the idle charge control in which only the integrated starter andgenerator 60 is used. Therefore, even when the vehicle is driven under a severe condition in which acceleration or deceleration is frequently generated, the SOC of thebattery 50 may be maintained in a normal range. - Furthermore, the
controller 100 may be configured to determine whether an idle lock-up charge release condition is satisfied (S240). The idle lock-up charge release condition may be considered to be satisfied when the coasting state is released or the SOC of the battery is equal to or greater than an idle lock-up charge release SOC. The idle lock-up release SOC may be set based on the driving tendency level. In other words, an idle lock-up release SOC based on the aggressive level may be set to be greater than an idle lock-up release SOC based on the normal level. In response to determining in S240 that the idle lock-up charge release condition is not satisfied, thecontroller 100 may proceed to S230. In response to determining in S240 that the idle lock-up charge release condition is satisfied, thecontroller 100 may be configured to release the idle lock-up charge control (S250), and terminate the method for charging a battery using a driving tendency according to an exemplary embodiment of the present invention. -
FIG. 6 is an exemplary flow chart showing a method for performing a shift control and a creep torque control using a driving tendency according to an exemplary embodiment of the present invention.FIG. 7 is an exemplary diagram showing a shift pattern according to an exemplary embodiment of the present invention. As shown inFIG. 6 , the method for performing a shift control and a creep torque control according to an exemplary embodiment of the present invention starts with determining the driving tendency level based on the data to determine the driving tendency of the driver (S310). In other words, thecontroller 100 may be configured to calculate the driving tendency index based on the data detected by thedata detector 90 and determine the driving tendency level of the driver based on the driving tendency index. The driving tendency level may be any one of the mild level, the normal level, the aggressive level, and the racer level. - The
controller 100 may be configured to set a shift pattern and a creep torque map based on the driving tendency level (S320). As shown inFIG. 7 , the shift pattern may be set differently based on the driving tendency level. The shift pattern may be any one of a mild shift pattern that corresponds to the mild level, a normal shift pattern that corresponds to the normal level, an aggressive shift pattern that corresponds to the aggressive level, and a racer shift pattern that corresponds to the racer level. A target creep torque that corresponds to a given condition may be stored in the creep torque map. Creep driving may refer to that the hybrid electric vehicle is driven by only the torque of themotor 20 when the accelerator pedal is disengaged. The target creep torque may be a torque required during the creep driving. - The
controller 100 may be configured to perform the shift control based on the shift pattern (S330). As shown inFIG. 7 , a shift may be performed at a relative lower vehicle speed when the driving tendency level is the normal level than when the driving tendency level is the aggressive level. Therefore, a shift feel appropriate for the driving tendency of the driver may be provided, and when the driving tendency level is the aggressive level or the racer level, an average RPM of theengine 10 may increase, thereby making it possible to maintain the SOC of thebattery 50 in a normal range. In addition, thecontroller 100 may be configured to perform the creep torque control using the creep torque map based on the vehicle speed and the shift stage. The shift stage may be determined based on the shift pattern set based on the driving tendency level. Therefore, the creep torque appropriate for the driving tendency of the driver may be generated. -
FIG. 8 is an exemplary flow chart showing a method for performing an engine start control using a driving tendency according to an exemplary embodiment of the present invention. As shown inFIG. 8 , the method for performing an engine start control according to an exemplary embodiment of the present invention starts with determining the driving tendency level based on the data to determine the driving tendency of the driver (S410). In other words, thecontroller 100 may be configured to calculate the driving tendency index based on the data detected by thedata detector 90 and determine the driving tendency level based on the driving tendency index. The driving tendency level may be any one of the mild level, the normal level, the aggressive level, and the racer level. - The
controller 100 may be configured to determine whether an engine start condition is satisfied when the engine is stopped (S420). The engine start condition may be considered to be satisfied when power required by the driver is equal to or greater than a first threshold value. The power required by the driver may be calculated based on the required torque and the vehicle speed, and the first threshold value may be set based on the driving tendency level. In other words, a first threshold value based on the aggressive level may be set to be less than a first threshold value based on the normal level. - In addition, the engine start condition may be considered to be satisfied when accumulated driving energy is equal to or greater than a second threshold value. The accumulated driving energy may be calculated based on the required power during a predetermined time in a section in which a change rate of the position value of the accelerator pedal is a positive value. The second threshold value may be set based on the driving tendency level. In other words, a second threshold value based on the aggressive level may be set to be less than a second threshold value based on the normal level.
- In response to determining in S420 that the engine start condition is not satisfied, the method for performing an engine start control using a driving tendency according to an exemplary embodiment of the present invention may terminate. In response to determining in S420 that the engine start condition is satisfied, the
controller 100 may be configured to perform the engine start control (S430). A mode of the hybrid electric vehicle may be converted from the EV mode into the HEV mode based on the engine start control. - Furthermore, the
controller 100 may be configured to determine whether an engine stop condition is satisfied (S440). The engine stop condition may be considered to be satisfied when power required by the driver is less than or equal to a third threshold value. The third threshold value may be set based on the driving tendency level. In other words, a third threshold value based on the aggressive level may be set to be greater than a third threshold value based on the normal level. In response to determining in S440 that the engine stop condition is satisfied, thecontroller 100 may be configured to perform an engine stop control (S450) and terminate the method for performing an engine start control using a driving tendency according to an exemplary embodiment of the present invention. - As described above, according to an exemplary embodiment of the present invention, the hybrid electric vehicle may be controlled using the driving tendency of the driver, thereby making it possible to optimize the SOC of the
battery 50 and improve the fuel efficiency. In addition, the intention of the driver may be more accurately reflected in the shift. - While this invention has been described in connection with what is presently considered to be exemplary embodiments, it is to be understood that the invention is not limited to the disclosed exemplary embodiments, but, on the contrary, is intended to cover various modifications and equivalent arrangements included within the spirit and scope of the appended claims.
Claims (8)
1-6. (canceled)
7. A method for controlling a hybrid electric vehicle using a driving tendency, comprising:
determining, by the controller, a driving tendency level based on data to determine a driving tendency of a driver;
setting, by the controller, a shift pattern based on the driving tendency level; and
performing, by the controller, a shift control based on the shift pattern.
8. The method for controlling a hybrid electric vehicle using a driving tendency of claim 7 , wherein the driving tendency level is any one of a mild level, a normal level, an aggressive level, and a racer level, and the shift pattern is any one of a mild shift pattern that corresponds to the mild level, a normal shift pattern that corresponds to the normal level, an aggressive shift pattern that corresponds to the aggressive level, and a racer shift pattern that corresponds to the racer level.
9. The method for controlling a hybrid electric vehicle using a driving tendency of claim 7 , further comprising:
setting, by the controller, a creep torque map based on the driving tendency level; and
performing, by the controller, a creep torque control using the creep torque map based on a vehicle speed and a shift stage,
wherein the shift stage is determined based on the shift pattern.
10. A method for controlling a hybrid electric vehicle using a driving tendency, comprising:
determining, by the controller, a driving tendency level based on data to determine a driving tendency of a driver;
determining, by the controller, whether an engine start condition is satisfied in a state in which an engine is stopped; and
performing, by the controller, an engine start control when the engine start condition is satisfied,
wherein the engine start condition is satisfied when power required by the driver is equal to or greater than a first threshold value, and the first threshold value is set based on the driving tendency level.
11. The method for controlling a hybrid electric vehicle using a driving tendency of claim 10 , wherein the engine start condition is satisfied when accumulated driving energy is equal to or greater than a second threshold value, the accumulated driving energy is calculated based on required power during a predetermined time in a section in which a change rate of a position value of an accelerator pedal is a positive value, and the second threshold value is set based on the driving tendency level.
12. The method for controlling a hybrid electric vehicle using a driving tendency of claim 10 , further comprising:
determining, by the controller, whether an engine stop condition is satisfied in a state in which the engine starts; and
performing, by the controller, an engine stop control when the engine stop condition is satisfied,
wherein the engine stop condition is satisfied when power required by the driver is less than or equal to a third threshold value, and the third threshold value is set based on the driving tendency level.
13-18. (canceled)
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Families Citing this family (24)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
GB2516035B (en) * | 2013-07-08 | 2017-03-29 | Jaguar Land Rover Ltd | Adaptive powertrain control for optimized performance |
GB2529802B (en) * | 2014-08-18 | 2019-01-09 | Jaguar Land Rover Ltd | A controller and method for enhanced battery charging in a hybrid electric vehicle |
KR101714206B1 (en) | 2015-09-02 | 2017-03-08 | 현대자동차주식회사 | System and method for controlling engine and motor of environment-friendly vehicle |
KR101713734B1 (en) * | 2015-10-06 | 2017-03-08 | 현대자동차 주식회사 | Method and apparatus of controlling hybrid electric vehicle |
KR102249586B1 (en) * | 2015-10-06 | 2021-05-10 | 현대자동차 주식회사 | Method and apparatus of controlling hybrid electric vehicle |
US10000200B2 (en) * | 2015-12-28 | 2018-06-19 | Robert Bosch Gmbh | Torque reserve in a hybrid system |
FR3053300B1 (en) * | 2016-07-01 | 2019-07-19 | Peugeot Citroen Automobiles Sa | CONTROLLING THE CHARGE STATE OF AN ELECTRIC MOTOR MACHINE BATTERY OF A PARALLEL VEHICLE HYBRID TRANSMISSION CHAIN |
US10252712B2 (en) * | 2016-10-11 | 2019-04-09 | Ford Global Technologies, Llc | Adapting engine-on time to driver aggressiveness in a hybrid vehicle |
JP6172367B1 (en) * | 2016-10-28 | 2017-08-02 | トヨタ自動車株式会社 | Control device for autonomous driving vehicle |
KR20180051273A (en) * | 2016-11-08 | 2018-05-16 | 현대자동차주식회사 | Method for controlling driving of vehicle using driving information of vehicle and vehicle using the same |
US10336334B2 (en) * | 2016-11-23 | 2019-07-02 | Ford Global Technologies, Llc | Regenerative braking downshift control using predictive information |
CN106891894A (en) * | 2017-01-26 | 2017-06-27 | 柳州延龙汽车有限公司 | Electric automobile drive control method based on destination |
KR101838512B1 (en) | 2017-04-04 | 2018-03-14 | 현대자동차주식회사 | Hybrid vehicle and method of controlling charge mode |
KR102388154B1 (en) * | 2017-12-07 | 2022-04-19 | 현대자동차주식회사 | Vehicle and method of controlling speed limit thereof |
CN111379852B (en) * | 2019-06-17 | 2021-07-13 | 长城汽车股份有限公司 | Gear determining method and system and vehicle |
KR102703174B1 (en) * | 2019-11-20 | 2024-09-05 | 현대자동차 주식회사 | Apparatus for controlling of hybrid vehicle and method using the same |
KR102703175B1 (en) * | 2019-11-25 | 2024-09-05 | 현대자동차 주식회사 | Apparatus for controlling of hybrid vehicle and method using the same |
KR102703177B1 (en) | 2019-12-13 | 2024-09-04 | 현대자동차 주식회사 | Apparatus for controlling hybirid vehicle and method using the same |
CN113511185B (en) * | 2020-04-10 | 2022-12-09 | 北京福田康明斯发动机有限公司 | Engine torque output control method, engine torque output control device, computer equipment and storage medium |
US11326571B2 (en) | 2020-08-03 | 2022-05-10 | Ford Global Technologies, Llc | Methods and system for adaptively switching an engine starting device |
US11300091B2 (en) | 2020-08-03 | 2022-04-12 | Ford Global Technologies, Llc | Methods and system for inhibiting automatic engine stopping |
US12115972B2 (en) * | 2020-09-15 | 2024-10-15 | Hyundai Motor Company | Apparatus for controlling hybrid vehicle and method using the same |
CN112644499B (en) * | 2021-01-08 | 2022-04-01 | 天津易众腾动力技术有限公司 | Control method for realizing reversing, constant-speed and crawling in whole vehicle controller of new energy vehicle |
CN116118704B (en) * | 2023-02-15 | 2023-12-26 | 广州汽车集团股份有限公司 | Mode switching method and device for automobile, automobile and storage medium |
Family Cites Families (22)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
DE19727044A1 (en) * | 1997-06-25 | 1999-02-04 | Siemens Ag | Control for the drive train of a motor vehicle |
US6553301B1 (en) * | 2000-05-19 | 2003-04-22 | General Motors Corporation | System and method of providing optimal fuel economy for automobiles |
KR100869184B1 (en) | 2000-10-20 | 2008-11-18 | 루크 라멜렌 운트 쿠플룽스바우 베타일리궁스 카게 | Motor vehicle with a gearbox and method for operating a motor vehicle |
KR100391724B1 (en) | 2001-05-25 | 2003-07-16 | 씨멘스 오토모티브 주식회사 | Method for automatically controlling a change speed gear according to a person of disposition and apparatus therefore |
KR100448381B1 (en) | 2002-06-28 | 2004-09-10 | 현대자동차주식회사 | Shift control method and apparatus of an automatic transmission |
DE102004043589B4 (en) * | 2004-09-09 | 2018-11-15 | Zf Friedrichshafen Ag | Apparatus and method for determining the drive power distribution in a hybrid powertrain of a vehicle |
US7171299B1 (en) * | 2005-08-23 | 2007-01-30 | Gm Global Technology Operations, Inc. | Driveline clunk management system |
KR101172083B1 (en) | 2006-08-14 | 2012-08-10 | 현대자동차주식회사 | Torque map formation method |
JP4297149B2 (en) | 2006-09-29 | 2009-07-15 | トヨタ自動車株式会社 | Vehicle steering device |
US7659698B2 (en) * | 2006-10-02 | 2010-02-09 | Ford Global Technologies, Llc | System and method for controlling a state of charge of an energy storage system |
JP4229185B2 (en) * | 2007-01-12 | 2009-02-25 | トヨタ自動車株式会社 | Hybrid vehicle and control method thereof |
JP2010052610A (en) | 2008-08-29 | 2010-03-11 | Fujitsu Ten Ltd | Device and method of controlling hybrid vehicle |
JP2010071299A (en) | 2008-09-16 | 2010-04-02 | Nissan Motor Co Ltd | Manual down-shift control device of automatic transmission |
US8131441B2 (en) | 2009-04-08 | 2012-03-06 | Ford Global Technologies, Llc | System and method for controlling torque based on driver status |
KR101251502B1 (en) | 2010-12-01 | 2013-04-05 | 현대자동차주식회사 | System for learning driver's propensity to drive of hybrid vehicle and method thereof |
KR101361384B1 (en) | 2011-12-26 | 2014-02-21 | 현대자동차주식회사 | Control method for switching mode between electric vehicle and hybrid electric vehicle |
GB201201222D0 (en) * | 2012-01-25 | 2012-03-07 | Jaguar Cars | Motor vehicle and method of control of a motor vehicle |
GB201201221D0 (en) * | 2012-01-25 | 2012-03-07 | Jaguar Cars | Hybrid electric vehicle and method of control thereof |
KR101826537B1 (en) | 2012-06-05 | 2018-03-22 | 현대자동차 주식회사 | Motor torque control system for green car and method thereof |
KR101371476B1 (en) * | 2012-09-12 | 2014-03-25 | 기아자동차주식회사 | Method and system for charging battery for hybrid vehicle |
US9317086B2 (en) * | 2012-11-16 | 2016-04-19 | Volkswagen Ag | Apparatus and method for initiating a charging process of an electric vehicle |
GB2516035B (en) | 2013-07-08 | 2017-03-29 | Jaguar Land Rover Ltd | Adaptive powertrain control for optimized performance |
-
2014
- 2014-07-08 KR KR1020140085346A patent/KR101542988B1/en active IP Right Grant
- 2014-12-04 US US14/560,182 patent/US9802598B2/en active Active
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2017
- 2017-10-18 US US15/787,080 patent/US20180043877A1/en not_active Abandoned
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2020
- 2020-04-21 US US16/854,198 patent/US20200247384A1/en not_active Abandoned
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2021
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US20160009271A1 (en) | 2016-01-14 |
US11654879B2 (en) | 2023-05-23 |
US20210276528A1 (en) | 2021-09-09 |
US9802598B2 (en) | 2017-10-31 |
KR101542988B1 (en) | 2015-08-07 |
US20180043877A1 (en) | 2018-02-15 |
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